Investigation of nonlinear sloshing effects in seismically excited tanks

Soil Dynamics and Earthquake Engineering - Tập 43 - Trang 355-365 - 2012
Mohammad Ali Goudarzi1, Saeed Reza Sabbagh-Yazdi2
1Assistant Professor, Structural Engineering Research Center, International Institute of Earthquake Engineering and Seismology (IIEES), Tehran, Iran
2Full Professor on Civil Engineering Department, KNToosi University of Technology, Tehran, Iran

Tài liệu tham khảo

Hatayama K, Zama S, Nishi H, Yamada M, Hirokawa M, and Inoue R. The damages of oil storage tanks during the 2003 Tokachi-oki earthquake and the long period ground motions. In: Proceedings of the JSCEAIJ on huge subduction earthquakes-wide area strong ground motion prediction, In Japanese, pp. 7–18. Goudarzi, 2006, Seismic analysis of hydrodynamic sloshing force on storage tank roof, Journal of Earthquake Spectra, 26, 131, 10.1193/1.3283902 Goudarzi, 2012, Analytical and experimental evaluation on the effectiveness of upper mounted baffles with respect to commonly used baffles, Ocean Engineering, 42, 205, 10.1016/j.oceaneng.2011.12.005 Abramson HN. The dynamic behaviour of liquid in moving containers. Reports SP 106 of NASA;1966. Chen, 2000, Complete two-dimensional analysis of sea-wave-induced fully non-linear sloshing fluid in a rigid floating tank, Journal of Ocean Engineering, 27, 953, 10.1016/S0029-8018(99)00036-0 Wu, 2001, The effect of viscosity on the transient free-surface waves in a two-dimensional tank, Journal of Engineering Mathematics, 40, 77, 10.1023/A:1017558826258 Faltinsen, 1974, A non-linear theory of sloshing in rectangular tanks, Journal of Ship Research, 18, 224, 10.5957/jsr.1974.18.4.224 Solaas, 1997, Combined numerical and analytical solution for sloshing in two-dimensional tanks of general shape, Journal of Ship Research, 41, 118 Faltinsen, 1978, A numerical non-linear method of sloshing in tanks with two-dimensional flow, Journal of Ship Research, 22, 193, 10.5957/jsr.1978.22.3.193 Faltinsen, 2002, Asymptotic modal approximation of nonlinear resonant sloshing in a rectangular tank with small fluid depth, Journal of Fluid Mechanics, 470, 319, 10.1017/S0022112002002112 Firouz-Abadi, 2011, A modal approach to second-order analysis of sloshing using boundary element method, Ocean Engineering, 38, 11, 10.1016/j.oceaneng.2010.05.001 Okamoto, 1990, Two-dimensional sloshing analysis by Lagrangian finite element method, International Journal of Numerical Methods in Fluid, 11, 453, 10.1002/fld.1650110502 Telste JG. Calculation of fluid motion resulting from large amplitude forced heave motion of a two-dimensional cylinder in a free surface. In: Proceedings of the fourth international conference on numerical ship hydrodynamics USA 1985: pp. 81–93. Romero, 1995, A numerical model for 2-D sloshing of pseudoviscous liquids in horizontally accelerated rectangular containers, Boundary Elements XVII, 567 Wu, 1998, Numerical simulation of sloshing waves in a 3D tank based on a finite element method, Journal of Applied Ocean Research, 20, 337, 10.1016/S0141-1187(98)00030-3 Ushijima, 1998, Three-dimensional arbitrary Lagrangian–Eulerian numerical prediction method for non-linear free surface oscillation, International Journal for Numerical Methods in Fluids, 26, 605, 10.1002/(SICI)1097-0363(19980315)26:5<605::AID-FLD668>3.0.CO;2-W Chern, 1999, A pseudospectral s-transformation model of 2-D nonlinear waves, Journal of Fluids & Structures, 13, 607, 10.1006/jfls.1999.0221 Turnbull, 2003, Numerical wave tank based on a s-transformed finite element inviscid flow solver, International Journal for Numerical Methods in Fluids, 42, 641, 10.1002/fld.539 Ferrant P, Le Touze D. Simulation of sloshing waves in a 3D tank based on a pseudo-spectral method. In: Proceedings of the 16th internetional workshop on water waves and floating bodies, Japan, 2001. Ibrahim, 2001, Recent advances in liquid sloshing dynamics, Journal of Applied Mechanics Researches, 54, 133, 10.1115/1.3097293 Cariou, 1999, Liquid sloshing in ship tanks: a comparative study of numerical simulation, Journal of Marine Structure, 12, 183, 10.1016/S0951-8339(99)00026-X Çelebi, 2002, Nonlinear modeling of liquid sloshing in a moving rectangular tank, Journal of Ocean Engineering, 29, 1527, 10.1016/S0029-8018(01)00085-3 Hill, 2003, Transient and steady-state amplitudes of forced waves in rectangular basins, Journal of Physics and Fluids, 15, 1576, 10.1063/1.1569917 Frandsen, 2004, Sloshing motions in excited tanks, Journal of Computational Physics, 196, 53, 10.1016/j.jcp.2003.10.031 Ibrahim, 2005 Chen, 1996, Large amplitude liquid sloshing in seismically excited tanks, Earthquake Engineering and Structural Dynamics, 25, 653, 10.1002/(SICI)1096-9845(199607)25:7<653::AID-EQE513>3.0.CO;2-H Hugo, 2007, Nonlinear sloshing response of cylindrical tanks subjected to earthquake ground motion, Engineering Structures, 29, 3364, 10.1016/j.engstruct.2007.08.023 Ozdemir, 2010, FSI methods for seismic analysis of sloshing tank problems, Mécanique & Industries, 11, 133, 10.1051/meca/2010025 Pal, 2012, Slosh dynamics of liquid-filled rigid containers: two-dimensional meshless local Petrov–Galerkin approach, Journal of Engineering Mechanics, 138, 567, 10.1061/(ASCE)EM.1943-7889.0000367 Theory manual of ANSYS, a general purpose finite element package, 2010. Brooks, 1982, Streamline Upwind/Petrov–Galerkin formulation for convection dominated flows with particular emphasis on the incompressible Navier–Stokes equations, Computer Methods in Applied Mechanics and Engineering, 32, 199, 10.1016/0045-7825(82)90071-8 Rice, 1985, A monotone streamline upwind finite element method for convection-dominated flows, Computer Methods in Applied Mechanics and Engineering, 48, 313, 10.1016/S0045-7825(85)80005-0 Wang, 2001, A fast and robust variant of the SIMPLE algorithm for finite-element simulations of incompressible flows, Computational Fluid and Solid Mechanics, 2, 1014, 10.1016/B978-008043944-0/50828-3